Electrochemical survey of electroactive microbial populations in deep-sea hydrothermal fields
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Published:2024-08-28
Issue:1
Volume:11
Page:
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ISSN:2197-4284
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Container-title:Progress in Earth and Planetary Science
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language:en
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Short-container-title:Prog Earth Planet Sci
Author:
Yamamoto MasahiroORCID, Kawada Yoshifumi, Takaki Yoshihiro, Shimoniida Kosuke, Shitara Mariko, Tanizaki Akiko, Kashima Hiroyuki, Hirai Miho, Takaya Yutaro, Nozaki Tatsuo, Kasaya Takafumi, Takai Ken
Abstract
AbstractElectric discharge in deep-sea hydrothermal fields leads us to expect the existence of electroactive microbial ecosystems in the environments. Electrochemical properties such as electric field distribution on the seafloor and electrical conductivity of the rock can be useful indicators of searching electroactive microbial community in natural environments. We performed electric field measurements in deep-sea hydrothermal fields and collected rock samples by a remotely operative vehicle (ROV) operation. Several spots on the seafloor with strong electric fields were detected, which included both active hydrothermal vent areas and inactive sulfide deposits far from the vents. The electrical conductivity of the rock samples was correlated with the copper and iron sulfide content. Microbial community compositions of the rock samples were characterized by small subunit (SSU) rRNA gene amplicon sequencing analysis. The abundance of several microbial components, which are highly related to electroactive microorganisms such as Geobacteraceae and Thiomicrorhabdus, was affected by the electrical properties of rock samples. The results suggested that electrochemical properties on the seafloor would be related to the abundance of possible electroactive microbial populations, and that the electrochemical survey may be a powerful tool for exploring electroactive ecosystems.
Funder
Japan Society for the Promotion of Science London National Institutes of Natural Sciences
Publisher
Springer Science and Business Media LLC
Reference41 articles.
1. Ang R, Khan AU, Tsujii N, Takai K, Nakamura R, Mori T (2015) Thermoelectricity generation and electron–magnon scattering in a natural chalcopyrite mineral from a deep-sea hydrothermal vent. Angew Chem Int Ed 54:12909–12913 2. Bigalke J, Grabner EW (1997) The Geobattery model: a contribution to large scale electrochemistry. Electrochim Acta 42:3443–3352 3. Bolyen E, Rideout JR, Dillon MR, Bokulich NA, Abnet CC, Al-Ghalith GA, Alexander H, Alm EJ, Arumugam M, Asnicar F, Bai Y, Bisanz JE, Bittinger K, Brejnrod A, Brislawn CJ, Brown CT, Callahan BJ, Caraballo-Rodríguez AM, Chase J, Cope EK, Da Silva R, Diener C, Dorrestein PC, Douglas GM, Durall DM, Duvallet C, Edwardson CF, Ernst M, Estaki M, Fouquier J et al (2019) Reproducible, interactive, scalable and extensible microbiome data science using QIIME 2. Nat Biotechnol 37:852–857 4. Casar CP, Kruger BR, Flynn TM, Masterson AL, Momper LM, Osburn MR (2020) Mineral-hosted biofilm communities in the continental deep subsurface, Deep Mine Microbial Observatory, SD, USA. Geobiology 18:508–522 5. Ding J, Lu Y-Z, Fu L, Ding Z-W, Mu Y, Cheng SH, Zeng RJ (2017) Decoupling of DAMO archaea from DAMO bacteria in a methane-driven microbial fuel cell. Water Res 110:112–119
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